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PMID: 21820737 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Elucidating the mechanobiology of malignant brain tumors using a brain matrix-mimetic hyaluronic acid hydrogel platform.

Biomaterials ·Vol. 32 ·No. 31 ·2011-11-00 ·Pages 7913-23

Ananthanarayanan B, Kim Y, Kumar S

Abstract

Glioblastoma multiforme (GBM) is a malignant brain tumor characterized by diffuse infiltration of single cells into the brain parenchyma, which is a process that relies in part on aberrant biochemical and biophysical interactions between tumor cells and the brain extracellular matrix (ECM). A major obstacle to understanding ECM regulation of GBM invasion is the absence of model matrix systems that recapitulate the distinct composition and physical structure of brain ECM while allowing independent control of adhesive ligand density, mechanics, and microstructure. To address this need, we synthesized brain-mimetic ECMs based on hyaluronic acid (HA) with a range of stiffnesses that encompasses normal and tumorigenic brain tissue and functionalized these materials with short Arg-Gly-Asp (RGD) peptides to facilitate cell adhesion. Scanning electron micrographs of the hydrogels revealed a dense, sheet-like microstructure with apparent nanoscale porosity similar to brain extracellular space. On flat hydrogel substrates, glioma cell spreading area and actin stress fiber assembly increased strongly with increasing density of RGD peptide. Increasing HA stiffness under constant RGD density produced similar trends and increased the speed of random motility. In a three-dimensional (3D) spheroid paradigm, glioma cells invaded HA hydrogels with morphological patterns distinct from those observed on flat surfaces or in 3D collagen-based ECMs but highly reminiscent of those seen in brain slices. This material system represents a brain-mimetic model ECM with tunable ligand density and stiffness amenable to investigations of the mechanobiological regulation of brain tumor progression.

MeSH Terms
Biomechanical Phenomena/drug effects Biomimetic Materials/pharmacology Brain Neoplasms/pathology Cell Adhesion/drug effects Cell Count Cell Line, Tumor Cell Movement/drug effects Cell Proliferation/drug effects Cell Shape/drug effects Extracellular Matrix/drug effects,metabolism Glioma/pathology Humans Hyaluronic Acid/chemical synthesis,chemistry Hydrogels/pharmacology Methacrylates/chemical synthesis,chemistry,pharmacology Microscopy, Electron, Scanning Neoplasm Invasiveness Oligopeptides/pharmacology Spheroids, Cellular/drug effects,pathology
Chemicals
Hydrogels Methacrylates Oligopeptides arginyl-glycyl-aspartic acid Hyaluronic Acid
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Ananthanarayanan Badriprasad
Department of Bioengineering and California Institute for Quantitative Biosciences, University of California, Berkeley, CA 94720, USA.
Kim Yushan
Kumar Sanjay
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Article Info
Journal
Biomaterials
Abbr.
Biomaterials
ISSN
1878-5905
Published
2011-11-00
Epub
2011-00-05
Pages
7913-23
Language
English
Region
Netherlands
NLM ID
8100316
PMCID
PMC3159794
Subset
IM
Grants
NIH HHS · 1DP2OD004213 · United States
NCI NIH HHS · U54 CA143836 · United States
NCI NIH HHS · U54 CA143836-01 · United States
NCI NIH HHS · 1U54CA143836 · United States
NIH HHS · DP2 OD004213 · United States
NIH HHS · DP2 OD004213-01 · United States
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